УДК: 681.785
Increasing the reliability of an expert estimate of the probability of detecting and recognizing objects from thermal-vision images
Full text «Opticheskii Zhurnal»
Full text on elibrary.ru
Publication in Journal of Optical Technology
Павлычева Н.К., Хасан М. Спектрограф для исследования рамановского рассеяния в углеродных нанотрубках // Оптический журнал. 2012. Т. 79. № 3. С. 47–50.
Pavlycheva N. K., Khasan M. A spectrograph for investigating Raman scattering in carbon nanotubes [in Russian] // Opticheskii Zhurnal. 2012. V. 79. № 3. P. 47–50.
N. K. Pavlycheva and M. Khasan, "A spectrograph for investigating Raman scattering in carbon nanotubes," Journal of Optical Technology. 79(3), 160-162 (2012). https://doi.org/10.1364/JOT.79.000160
The paper describes an apparatus for investigating Raman scattering in carbon nanotubes. Experimental results are presented. Based on these results, the requirements on the optical characteristics of a specialized compact spectrograph for analyzing carbon nanotubes are worked out, and an optical layout is designed, using a technique for designing a flat-field spectrograph. The proposed spectrograph provides a spectral resolution of 3.5 cm−1.
carbon nanotubes, Raman scattering, spectrograph, concave hologram diffraction grating, aberrations
OCIS codes: 160.4236, 300.6330, 050.1950, 090.2890
References:1. R. H. Baughman, A. A. Zakhidov, and W. A. de Heer, “Carbon nanotubes—the route toward applications,” Science 297, 787 (2002).
2. H. S. Nalwa, “Structural characterization of single-wall carbon nanotubes,” in Encyclopedia of Nanoscience and Nanotechnology (Am. Sci. Pub, Valencia, CA, 2004), vol. 10, pp. 125–147.
3. A. Jorio, M. A. Pimenta, A. G. Souza Filho, R. Saito, G. Dresselhaus, and M. S. Dresselhaus, “Characterizing carbon nanotube samples with resonance Raman scattering,” New J. Phys. 5, 139 (2003).
4. K. Kneipp, H. Kneipp, M. S. Dresselhaus, and S. Lefrant, “Surface-enhanced Raman scattering on single-wall carbon nanotubes,” Philos. Trans. R. Soc. London, Ser. A 362, 2361 (2004).
5. R. Graupner, “Raman spectroscopy of covalently functionalized single-wall carbon nanotubes,” J. Raman Spectrosc. 38, 673 (2007).
6. M. S. Dresselhaus, G. Dresselhaus, R. Saito, and A. Jorio, “Raman spectroscopy of carbon nanotubes,” Phys. Rep. 409, 47 (2005).
7. X. Zhao, Y. Ando, L.-C. Qin, H. Kataura, Y. Maniwa, and R. Saito, “Characteristic Raman spectra of multi-walled carbon nanotubes,” Physica B 323, 265 (2002).
8. N. K. Pavlycheva, Spectral Devices with Nonclassical Diffraction Gratings (Izd. Kazan. Gos. Tekhn. Univ, Kazan, 2003).
9. N. K. Pavlycheva, A. A. Peplov, and A. P. Demin, “Compact spectrometer with wide applicability,” Opt. Zh. 74, No. 3, 29 (2007). [J. Opt. Technol. 74, 173 (2007)].
10. N. K. Pavlycheva, I. G. Venderevskaya, and M. Khasan, “Spectrograph for studying the spectrum of carbon nanotubes,” in Collection of Papers of the Ninth International Conference on Applied Optics 2010, vol. 1, St. Petersburg, 18–22 Oct. 2010, pp. 191–194.